Cooling a micromechanical beam by coupling it to a transmission line
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- Type
- article
- Published
- 2007-06-21
- Cited by
- 48
- References
- 33
- Access
- Open access
- OpenAlex
- https://openalex.org/W1979373685
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:9908517
Keywords
Beam (structure), Microwave, Transmission line, Electric power transmission, Resonator
References
Cited by
- Quantum-Limited Mechanical Resonator Measurement And Back-Action Cooling To Near The Quantum Ground State
- Quantum noise in photothermal cooling
- Quantum feedback: theory, experiments, and applications
- Lower limit on the achievable temperature in resonator-based sideband cooling
- Fast optical cooling of a nanomechanical cantilever by a dynamical Stark-shift gate
- Cooling of a nanomechanical resonator in presence of a single diatomic molecule
- Hybrid quantum circuits: Superconducting circuits interacting with other quantum systems
- Cooling a mechanical resonator via coupling to a tunable double quantum dot
- Optically mediated spatial localization of collective modes of two coupled cantilevers for high sensitivity optomechanical transducer
- Preparation and detection of a mechanical resonator near the ground state of motion
- Cooling and squeezing the fluctuations of a nanomechanical beam by indirect quantum feedback control
- On the developments and applications of optical microcavities: an overview
- Transition from weak to strong measurements by nonlinear quantum feedback control
- Cooling a charged mechanical resonator with time-dependent bias gate voltages
- Cooling a magnetic resonance force microscope via the dynamical back action of nuclear spins
- Quantum analysis of a nonlinear microwave cavity-embedded dc SQUID displacement detector
- Optical multistability and cooling of a micromechanical mirror induced by radiation pressure in optomechanical cavity
- Controllable strong coupling between individual spin qubits and a transmission line resonator via nanomechanical resonators
- Fast optical cooling of nanomechanical cantilever with the dynamical Zeeman effect.
- High-frequency metallic nanomechanical resonators
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